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Membrane reforming in converting natural gas to hydrogen (part one)

机译:将天然气转化为氢气的膜重整(第一部分)

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Membrane reforming reactors (MRR) could play a key role in converting natural gas into hydrogen. The major advantage of MRR architecture is the possibility to shift the chemical equilibrium toward the right-hand side of the reaction, improving hydrogen production and allowing, the same time high methane conversion at relatively low temperatures such as 650 ℃. Such a low operating temperature makes it possible to locate the MRR downstream of a gas turbine, achieving an efficient hybrid system (power+hydrogen) with a significant reduction in energy consumption (around 10%). This paper discusses the whole innovative architecture where conventional tubular reforming is integrated with hydrogen permeable palladium membrane separators. The fundamental concepts are analyzed and integrated into a process scheme; the structural effects of variables design such as reactor temperature outlet, S/C ratio and recycle ratio throughout pinch and sensitivity analysis are described, and a comparison of the process economics with conventional hydrogen technology is presented at the end of the second part of this paper. The production of highly reliable, defect-free and reproducible, Pd-alloy membranes for selective hydrogen separation is a key issue in the proposed hybrid architecture.
机译:膜重整反应器(MRR)可以在将天然气转化为氢气方面发挥关键作用。 MRR结构的主要优点是可以将化学平衡移至反应的右侧,从而提高了产氢量,同时在相对较低的温度(例如650℃)下实现了高甲烷转化率。如此低的工作温度使得MRR可以定位在燃气轮机的下游,从而实现了高效的混合动力系统(功率+氢气),并且能耗显着降低(约10%)。本文讨论了整个创新体系结构,其中传统的管式重整与氢可渗透的钯膜分离器集成在一起。分析基本概念并将其集成到流程方案中;描述了变量设计的结构效果,例如反应堆温度出口,S / C比和循环比(在整个挤压过程中)和灵敏度分析,并在第二部分结尾处对工艺经济学与常规氢技术的比较进行了比较。 。用于选择性氢分离的高度可靠,无缺陷且可重现的钯合金膜的生产是提出的混合体系结构中的关键问题。

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